| Literature DB >> 28747046 |
Liye Zhang1, Junshan Yin2, Wei Yu3, Mingzhu Wang1, Huaqing Xie1.
Abstract
In this paper, ultra-long copper nanowires (CuNWs) were successfully synthesized at a large scale by hydrothermal reduction of divalent copper ion using oleylamine and oleic acid as dual ligands. The characteristic of CuNWs is hard and linear, which is clearly different from graphene nanoplatelets (GNPs) and multi-wall carbon nanotubes (MWCNTs). The thermal properties and models of silicone composites with three nanomaterials have been mainly researched. The maximum of thermal conductivity enhancement is up to 215% with only 1.0 vol.% CuNW loading, which is much higher than GNPs and MWCNTs. It is due to the ultra-long CuNWs with a length of more than 100 μm, which facilitates the formation of effective thermal-conductive networks, resulting in great enhancement of thermal conductivity.Entities:
Keywords: Copper; Nanowires; Silicone composites; Thermal conductivity; Ultra-long
Year: 2017 PMID: 28747046 PMCID: PMC5526825 DOI: 10.1186/s11671-017-2237-z
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Fig. 1FE-SEM images of different samples of a CuNWs, c GNPs, and e MWCNTs at low magnification and of b CuNWs and f MWCNTs at high magnification. TEM image of (d) GNPs
Fig. 2XRD patterns of CuNWs, GNPs, and MWCNTs
Fig. 3Thermal conductivity enhancements of silicone composites with different fillers as a function of volume fraction
Fig. 4Thermal conductivities of three kinds of fillers in silicone composites with the predictions by the Nielsen model
The physical properties and aspect ratio of three kinds of fillers
| Filler | Thermal conductivity (W/mk) | The aspect ratio (SEM and TEM) | Effective aspect ratio (Nielsen model) | Characteristic |
|---|---|---|---|---|
| CuNWs | 398 | 333~400 | 350 | Hard, linear |
| GNPs | 1000 | 150~250 | 200 | Planarity |
| MWCNTs | 3000 | 200~400 | 100 | Smooth, frizzy |